Single-photon nonlinearities and blockade from a strongly driven photonic molecule
Abstract
Achieving the regime of single-photon nonlinearities in photonic devices just exploiting the intrinsic high-order susceptibilities of conventional materials would open the door to practical semiconductor-based quantum photonic technologies. Here we show that this regime can be achieved in a triply resonant integrated photonic device made of two coupled ring resonators, without necessarily requiring low volume confinement, in a material platform displaying an intrinsic third-order nonlinearity. By strongly driving one of the three resonances of the system, a weak coherent probe at one of the others results in a strongly suppressed two-photon probability at the output, evidenced by antibunched second-order correlation function at zero-time delay under continuous wave driving.
Cite
@article{arxiv.2207.02603,
title = {Single-photon nonlinearities and blockade from a strongly driven photonic molecule},
author = {Davide Nigro and Marco Clementi and Camille Sophie Brès and Marco Liscidini and Dario Gerace},
journal= {arXiv preprint arXiv:2207.02603},
year = {2022}
}